Targeting Histone K4 Methylation for Treatment of Alzheimer's Disease and Related Dementia
Targeting Histone K4 Methylation for Treatment of Alzheimer's Disease and Related Dementia
批准号:
9812686
负责人:
Zhen Yan
金额:
$50.64万
依托单位国家:
美国
项目类别:
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-08-15 至 2024-04-30
关键词:
AgeAgingAlzheimer&aposs DiseaseAlzheimer&aposs disease modelAlzheimer&aposs disease related dementiaArchitectureAutopsyBehaviorBehavioralBehavioral AssayBiochemicalBrainChIP-seqChromatinCognitiveCognitive deficitsDataDementiaDepositionDiseaseDisease ProgressionElectrophysiology (science)Environmental Risk FactorEnzymesEpigenetic ProcessExhibitsFrontotemporal DementiaFunctional disorderGene ActivationGene ExpressionGene Expression AlterationGene MutationGenerationsGenesGenetic TranscriptionGenomic DNAGenomic approachGoalsHistone H3HistonesHumanImpaired cognitionImpairmentIndividualLeadLinkLysineMAPT geneMediatingMemoryMethylationMethyltransferaseMicrotubulesMolecularNerve DegenerationNeurodegenerative DisordersNeurofibrillary TanglesPathogenesisPathogenicityPathologicPatientsPharmacotherapyPhysiologicalPlayPost-Translational Protein ProcessingPrefrontal CortexProcessProteinsRecoveryRoleSynapsesTauopathiesTestingTherapeuticTherapeutic EffectTimeTissuesTranscriptional RegulationTransgenic MiceUp-RegulationWestern Blottingbasebehavioral genomicschromatin remodelingdemethylationearly onseteffective therapyepigenetic druggene environment interactiongenetic risk factorgenome-widehippocampal pyramidal neuronhistone methylationhistone modificationhuman diseasehuman modelmouse modelmutantneurofibrillary tangle formationneuron lossnovelnovel strategiesnovel therapeuticssynaptic functiontau Proteinstau mutationtranscriptome sequencingtreatment strategy
中文摘要
点击翻译按钮获取中文摘要
英文摘要
Summary
Neurodegenerative disorders including Alzheimer’s disease (AD) and frontotemporal dementia
(FTD) are afflicting a large number of aging people. Mutations in the microtubule-associated
protein tau (MAPT) gene that lead to microtubule disassembly and neuronal degeneration have
been implicated in the pathogenesis of AD and FTD, however effective treatment for these
diseases is still lacking. Emerging evidence suggests that epigenetic dysregulation, which can
induce pathological alteration of gene expression, plays a key role in aging and
neurodegeneration. Using postmortem tissues from AD patients and transgenic mice carrying
mutant human Tau protein associated with FTD and AD, we have found that histone 3
trimethylation at lysine 4 (H3K4me3), which is linked to gene activation, is significantly elevated
in the prefrontal cortex (PFC), a key cognitive region impaired in AD and FTD. More importantly,
we have found that inhibiting H3K4-specific methyltransferases leads to the substantial recovery
of synaptic function in PFC pyramidal neurons, and the significant improvement of memory-
related behaviors in Tau AD model. Based on these intriguing results, we propose to further
reveal the role of H3K4me3 in AD pathophysiology and treatment. Combined molecular,
biochemical, electrophysiological, behavioral, and genomic approaches will be used to identify
aberrant H3K4 methylation in AD human brains and Tau AD model (Aim 1); to examine the
rescue effects of targeting H3K4-specific methyltransferases on synaptic and cognitive deficits
in Tau AD model (Aim 2); to reveal molecular mechanisms underlying the therapeutic effects of
targeting H3K4-specific methyltransferases in Tau AD model. Results gained from this project
will help to identify a novel therapeutic strategy for AD and related neurodegenerative disorders
associated with tauopathies.
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